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基于Weisfeiler-Lehman图核算法的装配体模型比较方法 被引量:2
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作者 左咪 邓兰 +1 位作者 薛婷 闫起源 《机械设计与制造》 北大核心 2020年第11期228-231,共4页
随着CAD信息技术的在机械领域的广泛应用,在机械产品设计过程中积累了大量包含多源信息的CAD模型,分析利用已有的产品模型可以大大提高新产品的开发效率。对能够比较全面表达产品信息的装配体模型进行比较分析可以很好的支撑通用结构挖... 随着CAD信息技术的在机械领域的广泛应用,在机械产品设计过程中积累了大量包含多源信息的CAD模型,分析利用已有的产品模型可以大大提高新产品的开发效率。对能够比较全面表达产品信息的装配体模型进行比较分析可以很好的支撑通用结构挖掘、模型检索等三维信息重用,提高产品设计效率。提出了基于Weisfeiler-Lehman图核算法的装配体模型比较方法。Weisfeiler-Lehman算法可以有效的解决图匹配问题,核函数不用计算复杂的非线性变换,直接得到非线性变换的内积,应用于图的模型中可以大大简化计算复杂度,实现图之间的相似度计算。首先用图模型对多源装配体模型进行信息的转化表达并进行初步信息归类,形成装配体类码连接图;将W-L图匹配算法和核函数综合应用,对装配体类码图进行相似度计算,实现装配体之间的比较分析。 展开更多
关键词 设计重用 装配体模型 模型相似度分析 W-l图核算法
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Hybrid scheduling model and analysis of performance for switched industrial Ethernet 被引量:1
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作者 胡春华 吴敏 +1 位作者 刘国平 王四春 《Journal of Central South University of Technology》 EI 2007年第2期271-277,共7页
The fact that outburst traffic in industrial Ethemet was focused on that would bring self-similar phenomenon leading to the delay increase of the cyclical data, and a hybrid priority queue schedule model was proposed ... The fact that outburst traffic in industrial Ethemet was focused on that would bring self-similar phenomenon leading to the delay increase of the cyclical data, and a hybrid priority queue schedule model was proposed in which the outburst data was given the highest priority. Some properties of the self-similar outburst data were proved by network calculus, and its service curve scheduled by the switch was gained. And then the performance of the scheduling algorithm was obtained. The simulation results are close to those calculated by using network calculus model. Some results are of actual significance to the construction of switched industrial Ethernet. 展开更多
关键词 switched industrial Ethemet scheduling model SELF-SIMILAR network calculus
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Vari-gram language model based on word clustering
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作者 袁里驰 《Journal of Central South University》 SCIE EI CAS 2012年第4期1057-1062,共6页
Category-based statistic language model is an important method to solve the problem of sparse data.But there are two bottlenecks:1) The problem of word clustering.It is hard to find a suitable clustering method with g... Category-based statistic language model is an important method to solve the problem of sparse data.But there are two bottlenecks:1) The problem of word clustering.It is hard to find a suitable clustering method with good performance and less computation.2) Class-based method always loses the prediction ability to adapt the text in different domains.In order to solve above problems,a definition of word similarity by utilizing mutual information was presented.Based on word similarity,the definition of word set similarity was given.Experiments show that word clustering algorithm based on similarity is better than conventional greedy clustering method in speed and performance,and the perplexity is reduced from 283 to 218.At the same time,an absolute weighted difference method was presented and was used to construct vari-gram language model which has good prediction ability.The perplexity of vari-gram model is reduced from 234.65 to 219.14 on Chinese corpora,and is reduced from 195.56 to 184.25 on English corpora compared with category-based model. 展开更多
关键词 word similarity word clustering statistical language model vari-gram language model
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